Damper
The damper design with inclined surfaces and grooves on friction elements guides grease away from friction surfaces, stabilizing friction force and preventing adhesion, thus enhancing performance and reducing manufacturing complexity.
Patent Information
- Application Number
- JP2022050793
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2022-03-25
- Publication Date
- 2025-11-12
- Estimated Expiration
- 2042-03-25
AI Technical Summary
In conventional dampers, grease applied to connecting portions can scatter and adhere to friction surfaces due to centrifugal force, leading to a decrease in friction force between rotating elements.
The damper design includes friction elements with inclined surfaces and grooves to guide grease away from friction surfaces, preventing adhesion and maintaining friction force by using elastic elements to stabilize the position of rotating elements.
The design effectively prevents grease from adhering to friction surfaces, stabilizing friction force and reducing the likelihood of resonance, while simplifying the hub structure and maintaining manufacturing efficiency.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates to a damper. [Background technology]
[0002] Conventionally, a damper has been known that includes a first rotating element, a second rotating element, a friction element that is interposed between the first and second rotating elements and rotates integrally with the second rotating element while sliding against the first rotating element, and a pressing element that generates an elastic force that presses the first rotating element and the friction element against each other (Patent Document 1). In such a damper, grease may be applied to a connecting portion that is provided on the second rotating element and that is connected to a connecting object, for example, by a spline. [Prior art documents] [Patent documents]
[0003] [Patent Document 1] Japanese Patent Application Laid-Open No. 2012-67877 Summary of the Invention [Problem to be solved by the invention]
[0004] In this type of damper, if the grease applied to the connecting part is scattered by centrifugal force and adheres to the friction surface of the friction element that slides against the first rotating element, there is a risk that the friction force between the first rotating element and the friction element will decrease.
[0005] Therefore, one of the objects of the present invention is to provide a novel damper that, for example, when grease is applied to a connecting portion, is likely to be prevented from adhering to the friction surface of a friction element. [Means for solving the problem]
[0006] The damper of the present invention includes: a first rotating element rotatably provided around a rotation center, the first rotating element having two friction wall portions formed in an annular shape around the rotation center and aligned in an axial direction of the rotation center; a second rotating element rotatably provided around the rotation center, the second rotating element having a connecting portion positioned radially inward of the rotation center with respect to the two friction wall portions and formed in a cylindrical shape around the rotation center; and a support wall portion extending from the connecting portion between the two friction wall portions and formed in an annular shape around the rotation center; elastic elements interposed between the first rotating element and the second rotating element and elastically expanding and contracting in a circumferential direction of the rotation center; and elastic elements provided on both sides of the support wall portions in the axial direction and rotatable around the rotation center integrally with the second rotating element. the friction element is provided with two friction elements supported by a support wall portion, each having an inner circumferential surface extending from a radially inner position of the friction wall portion toward the support wall portion, a friction surface located radially outward from the inner circumferential surface and located between the friction wall portion and the support wall portion so as to be able to slide against the friction wall portion, and an opposing surface located on the support wall portion side of the friction surface, extending radially outward from the inner circumferential surface and opposing the support wall portion; and a pressing element is interposed between the friction element and the support wall portion and generates an elastic force to press the friction wall portion and the friction surface against each other, and the inner circumferential surface of at least one of the two friction elements is provided with an inclined surface that slopes radially outward as it approaches the support wall portion.
[0007] With this configuration, for example, the inner circumferential surface of at least one of the two friction elements is provided with an inclined surface that slopes radially outward toward the support wall portion. Therefore, even if grease is applied to the connecting portion and the grease scatters radially outward due to centrifugal force, the grease easily strikes the inclined surface. The grease that strikes the inclined surface moves along the inclined surface toward the opposing surface, passing between the opposing surface and the support wall portion and moving radially outward. This helps to prevent grease from adhering to the friction surfaces of the friction elements.
[0008] In the damper, for example, the radially outer end of the opposing surface of the friction element on which the inclined surface is provided is located radially outward of the friction surface.
[0009] With this configuration, grease that moves from the radially outer end of the opposing surface to the radially outer side is likely to be prevented from adhering to the friction surface.
[0010] In the damper, for example, a groove extending in the radial direction is provided on the opposing surface of the friction element on which the inclined surface is provided.
[0011] With this configuration, the grease that has flowed from the inclined surface to the opposing surface can be guided radially outward by the groove.
[0012] In the damper, for example, the groove is provided at a position offset in the circumferential direction with respect to the elastic element.
[0013] With this configuration, the grease that flows from the grooves to the outside in the radial direction adheres to the elastic element, and is likely to be prevented from adhering to the friction surface of the friction element.
[0014] In the damper, for example, the inclined surface is aligned radially with the axial end of the connecting portion, and the end of the inclined surface opposite the support wall portion is located in the axial direction from the support wall portion toward the end of the inclined surface, further than the end of the connecting portion.
[0015] With this configuration, when grease applied to the connecting portion is scattered radially outward due to centrifugal force, the grease is more likely to come into contact with the inclined surface, which further reduces the adhesion of grease to the friction surface of the friction element. [Brief explanation of the drawings]
[0016] [Figure 1] FIG. 1 is an exemplary front view of a damper according to an embodiment, as viewed from the axial direction. [Figure 2] FIG. 2 is an exemplary exploded perspective view of the damper according to the embodiment. [Figure 3] FIG. 3 is a cross-sectional view taken along line III-III in FIG. [Figure 4]FIG. 4 is a cross-sectional view taken along line IV-IV in FIG. [Figure 5] FIG. 5 is an enlarged view of part V in FIG. [Figure 6] 6 is a cross-sectional view of a portion of the VI-VI cross section of FIG. 1, which corresponds to FIG. 5 in the radial direction. [Figure 7] FIG. 7 is an exemplary view of the first friction element of the damper according to the embodiment as viewed from the axial direction. [Figure 8] FIG. 8 is an exemplary perspective view of a first friction element of the damper according to the embodiment. [Figure 9] FIG. 9 is an exemplary view of the second friction element of the damper according to the embodiment as viewed from the axial direction. [Figure 10] FIG. 10 is an exemplary perspective view of the second friction element of the damper according to the embodiment. DETAILED DESCRIPTION OF THE INVENTION
[0017] Exemplary embodiments of the present invention are disclosed below. The configurations of the embodiments described below, as well as the actions and results (effects) brought about by the configurations, are merely examples. The present invention can also be realized by configurations other than those disclosed in the following embodiments. Furthermore, according to the present invention, it is possible to obtain at least one of the various effects (including derivative effects) obtained by the configurations.
[0018] In the following description, for convenience, the side closer to the engine (not shown) is referred to as the front, and the side farther from the engine is referred to as the rear. The terms "front" and "rear" in the following description do not necessarily correspond to the front and rear when mounted on a vehicle.
[0019] In the following description, the axial direction of the rotation center Ax will be simply referred to as the axial direction, the radial direction of the rotation center Ax will be simply referred to as the radial direction, and the circumferential direction of the rotation center Ax will be simply referred to as the circumferential direction. The rotation center Ax will also be referred to as the central axis.
[0020] Fig. 1 is an exemplary front view of a damper 1 according to an embodiment as viewed from the axial direction. Fig. 2 is an exemplary exploded perspective view of the damper 1 according to an embodiment. Fig. 3 is a cross-sectional view taken along line III-III in Fig. 1. Fig. 4 is a cross-sectional view taken along line IV-IV in Fig. 1.
[0021] As shown in FIGS. 1 to 4, the damper 1 includes a drive plate 10, a driven plate 20, and an intermediate plate 30. The drive plate 10, the driven plate 20, and the intermediate plate 30 are each provided so as to be rotatable independently around a rotation center Ax. In other words, the drive plate 10, the driven plate 20, and the intermediate plate 30 are rotatable relative to one another. The drive plate 10, the driven plate 20, and the intermediate plate 30 are made of a metal material such as an iron-based material. The drive plate 10 is an example of a first rotating element, the driven plate 20 is an example of a second rotating element, and the intermediate plate 30 is an example of a third rotating element. The drive plate 10 may also be referred to as an outer plate or an input member, and the driven plate 20 may also be referred to as an inner plate or an output member.
[0022] As shown in FIG. 1, the drive plate 10 has a central wall portion 10a, multiple drive arms 10b, and a peripheral edge portion 10c. The central wall portion 10a is located radially inward of the drive plate 10 and has an annular shape centered on the center of rotation Ax. The drive arms 10b protrude radially outward from the central wall portion 10a and bridge between the central wall portion 10a and the peripheral edge portion 10c. In this embodiment, the multiple drive arms 10b are spaced apart in the circumferential direction. The central wall portion 10a is an example of a friction wall portion.
[0023] The drive plate 10 is made up of multiple members. Specifically, as shown in FIGS. 3 and 4, the drive plate 10 has a front plate 11 and a rear plate 12. Each of the front plate 11 and the rear plate 12 is provided with a central wall portion 10a, multiple drive arms 10b, and a peripheral portion 10c. In other words, there are two central walls 10a. The front plate 11 and the rear plate 12 are joined together by connecting members 14 (FIG. 4). The connecting members 14 are, for example, rivets, but may also be other fasteners such as bolts and nuts, or may be shafts, etc. The front plate 11 and the rear plate 12 may also be joined by welding, adhesive, etc., without using the connecting members 14.
[0024] The front plate 11 is located between the engine and the rear plate 12. In other words, the rear plate 12 is located on the opposite side of the engine from the front plate 11. The front plate 11 and the rear plate 12 are shaped like plates that intersect (are perpendicular to) the center of rotation Ax (axial direction).
[0025] The driven plate 20 has a hub 21, a flange 22, and a plurality of driven arms 23. The hub 21 is an example of a connecting portion, and the flange 22 is an example of a support wall portion.
[0026] The hub 21 has a cylindrical shape centered on the rotation center Ax. It is located radially inside the driven plate 20. A female spline portion 21a is provided on the inner peripheral surface of the hub 21. The female spline portion 21a is provided between both axial ends 21b, 21c of the hub 21. End 21b is the end in the other direction D2, and end 21c is the end in one direction. A coupling object such as a shaft is coupled to the hub 21. Specifically, a coupling object male spline portion is spline-coupled to the female spline portion 21a. Grease is applied to the hub. Specifically, grease (lubricant) is applied to the inner peripheral surface of the hub 21, i.e., between the female spline portion 21a and the coupling object male spline portion.
[0027] The flange 22 protrudes radially outward from the hub 21. The flange 22 is located between the front plate 11 and the rear plate 12 of the drive plate 10. The flange 22 is shaped like a plate that intersects (is perpendicular to) the center of rotation Ax (axial direction).
[0028] The plurality of driven arms 23 protrude radially outward from the flange 22. The plurality of driven arms 23 are provided at intervals from one another in the circumferential direction. The drive arm 10b and the driven arm 23 overlap in the axial direction.
[0029] The intermediate plate 30 has a central portion 30a and a plurality of intermediate arms 30b. The central portion 30a is located radially inward of the intermediate plate 30 and has an annular shape centered on the rotation center Ax. The intermediate arms 30b protrude radially outward from the central portion 30a. In this embodiment, the plurality of intermediate arms 30b are provided at intervals in the circumferential direction.
[0030] The intermediate plate 30 is made up of a plurality of members. Specifically, the intermediate plate 30 has a first intermediate plate 31 and a second intermediate plate 32. The first intermediate plate 31 and the second intermediate plate 32 are joined together by a connecting member 33 (FIG. 4). The connecting member 33 is, for example, a rivet, but may also be other fasteners such as a bolt and a nut, or may also be a shaft, etc.
[0031] The first intermediate plate 31 is located between the front plate 11 of the drive plate 10 and the hub 21 of the driven plate 20. The second intermediate plate 32 is located between the rear plate 12 of the drive plate 10 and the hub 21 of the driven plate 20. The first intermediate plate 31 and the second intermediate plate 32 are shaped like a plate that intersects (is perpendicular to) the center of rotation Ax.
[0032] A cylindrical first friction element 61 and a cylindrical second friction element 62 are provided on both axial sides of the flange 22 of the driven plate 20. The first friction element 61 and the second friction element 62 both provide sliding resistance between the drive plate 10 and the driven plate 20 when they rotate relative to each other. In this embodiment, the first friction element 61 is provided to be rotatable integrally with the driven plate 20 and to be slidable relative to the rear plate 12. The first friction element 61 is coupled to the driven plate 20, for example, by fitting a recess provided on one of the first friction element 61 and the flange 22 of the driven plate 20 with a protrusion provided on the other of the first friction element 61 and the flange 22 of the driven plate 20. In other words, the first friction element 61 is supported by the flange 22. The second friction element 62 is provided to be rotatable integrally with the driven plate 20 and to be slidable relative to the front plate 11. The second friction element 62 is coupled to the driven plate 20, for example, by fitting a recess provided on one of the second friction element 62 and the flange 22 of the driven plate 20 into a protrusion provided on the other of the second friction element 62 and the flange 22 of the driven plate 20. In other words, the second friction element 62 is supported by the flange 22.
[0033] The first friction element 61 and the second friction element 62 are made of, for example, a synthetic resin material.
[0034] A disc spring 71 is interposed between the first friction element 61 and the driven plate 20. The disc spring 71 is an example of a pressing element. The disc spring 71 is also referred to as an elastic element.
[0035] 1, the damper 1 includes a plurality of first coil springs 41 and a plurality of second coil springs 42. The first coil springs 41 and the second coil springs 42 are interposed between the drive arm 10b and the intermediate arm 30b, and between the driven arm 23 and the intermediate arm 30b.
[0036] The first coil spring 41 and the second coil spring 42 each extend substantially along the circumferential direction (tangential direction). The first coil spring 41 is positioned adjacent to the drive arm 10b and the driven arm 23 in the clockwise direction in FIG. 1, and is positioned adjacent to the intermediate arm 30b in the counterclockwise direction in FIG. 1. The second coil spring 42 is positioned adjacent to the drive arm 10b and the driven arm 23 in the counterclockwise direction in FIG. 1, and is positioned adjacent to the intermediate arm 30b in the clockwise direction in FIG. The first coil spring 41 and the second coil spring 42 are arranged alternately in the circumferential direction. The first coil spring 41 and the second coil spring 42 are an example of an elastic element interposed between the drive plate 10 and the driven plate 20. The elastic element is not limited to a coil spring and may be another elastic element, such as an elastomer.
[0037] 1, during acceleration, due to the relative torsion between the drive plate 10 and the driven plate 20, the drive arm 10b and the intermediate arm 30b elastically compress the first coil spring 41, and the intermediate arm 30b and the driven arm 23 elastically compress the second coil spring 42. On the other hand, during deceleration, due to the relative torsion between the drive plate 10 and the driven plate 20, the drive arm 10b and the intermediate arm 30b elastically compress the second coil spring 42, and the intermediate arm 30b and the driven arm 23 elastically compress the first coil spring 41. The torsional state during acceleration is a state in which the drive plate 10 is twisted in the normal rotation direction relative to the driven plate 20 from a neutral position (an untwisted position, a position where the torsion angle is 0); in this specification, this state is referred to as the normal torsional state of the damper 1. On the other hand, the twisted state during deceleration is a state in which the drive plate 10 is twisted in the reverse direction (opposite to the forward rotation direction) relative to the neutral position with respect to the driven plate 20, and in this specification, this state is referred to as the reverse twisted state of the damper 1.
[0038] Furthermore, sheet members 43 are interposed between both ends of each of the first coil spring 41 and the second coil spring 42 in the longitudinal direction (winding axis direction, circumferential direction of the damper 1) and the drive arm 10b, the driven arm 23, and the intermediate arm 30b. The sheet members 43 may also be referred to as retainers.
[0039] Next, the positioning structure of the drive plate 10, the driven plate 20, and the intermediate plate 30 will be described.
[0040] Fig. 5 is an enlarged view of a portion V in Fig. 3. Fig. 6 is a cross-sectional view of a portion taken along line VI-VI in Fig. 1, which corresponds to Fig. 5 in the radial direction.
[0041] As shown in Figures 5 and 6, the drive plate 10 has a friction surface 10fa and a friction surface 10fb. The friction surface 10fa is provided on the rear plate 12 and faces one direction D1 in the axial direction of the rotation center Ax. The friction surface 10fa is formed in an annular shape around the rotation center Ax. The friction surface 10fb is provided on the front plate 11 and is located on the one direction D1 side of the friction surface 10fa. The friction surface 10fb faces another direction D2 opposite the one axial direction D1. The friction surface 10fb is formed in an annular shape around the rotation center Ax. The friction surfaces 10fa and 10fb face each other in the axial direction. That is, the friction surfaces 10fa and 10fb are aligned in the axial direction. The flange 22 of the driven plate 20 is located between the friction surfaces 10fa and 10fb.
[0042] The driven plate 20 also has surfaces 20fa and 20fb. The surfaces 20fa and 20fb are provided on the flange 22. The surface 20fa faces the other direction D2, and the surface 20fb faces the one direction D1.
[0043] The intermediate plate 30 has an opposing surface 30fa and an opposing surface 30fb. The opposing surface 30fa is located between the flange 22 and the friction surface 10fa in the axial direction and faces one direction D1. The opposing surface 30fb is located between the flange 22 and the friction surface 10fb in the axial direction and faces the other direction D2.
[0044] Fig. 7 is an exemplary view of the first friction element 61 of the damper 1 according to the embodiment as viewed from the axial direction. Fig. 8 is an exemplary perspective view of the first friction element 61 of the damper 1 according to the embodiment.
[0045] 5 to 8, the first friction element 61 has a base portion 61a, a support portion 61b, and a standing wall portion 61c. At least a portion of the base portion 61a is located between the central wall portion 10a of the rear plate 12 of the drive plate 10 and the flange 22 of the driven plate 20. The support portion 61b is located radially inward of the central wall portion 10a of the rear plate 12. The standing wall portion 61c extends radially outward from the base portion 61a.
[0046] The first friction element 61 also has an inner circumferential surface 61ff, which is provided across the base portion 61a and the support portion 61b.
[0047] The first friction element 61 also has a friction surface 61fa and a contact surface 61fb. The friction surface 61fa and the contact surface 61fb are located radially outward from the inner circumferential surface 61ff. The friction surface 61fa is located on the one direction D1 side with respect to the friction surface 10fa of the drive plate 10 and faces the other direction D2. The friction surface 61fa is in contact with the friction surface 10fa. The friction surface 61fa can slide against the friction surface 10fa. The contact surface 61fb is located on the one direction D1 side with respect to the opposing surface 30fa of the intermediate plate 30 and faces the other direction D2. The contact surface 61fb can come into contact with the opposing surface 30fa. The contact surface 61fb can slide against the opposing surface 30fa.
[0048] The first friction element 61 also has an opposing surface 61fc and surfaces 61fd and 61e. The opposing surface 61fc faces in direction D1 and faces the surface 20fa of the flange 22 of the intermediate plate 30 with a gap therebetween. The surface 61fd faces radially outward and is in contact with the inner periphery of the rear plate 12 of the drive plate 10. This allows the drive plate 10 to position the first friction element 61 in the radial direction. The surface 61fe faces radially outward and supports the inner periphery of the second intermediate plate 32 of the intermediate plate 30, thereby positioning the second intermediate plate 32 and, ultimately, the intermediate plate 30 in the radial direction.
[0049] The opposing surface 61fc is provided with a recess 61fm. The recess 61fm is recessed from the opposing surface 61fc in a direction away from the flange 22, that is, in the other direction D2. The opposing surface 61fc is included in the opposing surface 61fc.
[0050] Fig. 9 is an exemplary view of the second friction element 62 of the damper 1 according to the embodiment as viewed from the axial direction. Fig. 10 is an exemplary perspective view of the second friction element 62 of the damper 1 according to the embodiment.
[0051] 5, 6, 9, and 10, the second friction element 62 has a base portion 62a, a support portion 62b, and a standing wall portion 62c. At least a portion of the base portion 62a is located between the central wall portion 10a of the front plate 11 of the drive plate 10 and the flange 22 of the driven plate 20. The support portion 62b is located radially inward of the central wall portion 10a of the front plate 11. The standing wall portion 62c extends radially outward from the base portion 62a.
[0052] The second friction element 62 also has an inner circumferential surface 62ff, which is provided across the base portion 61a and the support portion 62b.
[0053] The second friction element 62 also has a friction surface 62fa and a contact surface 62fb. The friction surface 62fa and the contact surface 62fb are located radially outward from the inner circumferential surface 62ff. The friction surface 62fa is located on the other direction D2 side of the friction surface 10fb of the drive plate 10 and faces the one direction D1. The friction surface 62fa is in contact with the friction surface 10fb. The friction surface 62fa can slide against the friction surface 10fb. The contact surface 62fb is located on the other direction D2 side of the opposing surface 30fb of the intermediate plate 30 and faces the one direction D1. The contact surface 62fb can come into contact with the opposing surface 30fb. The contact surface 62fb can slide against the opposing surface 30fb.
[0054] The second friction element 62 also has an opposing surface 62fc and surfaces 62fd and 62e. The opposing surface 62fc faces the other direction D2 and faces the surface 20fb of the flange 22 of the intermediate plate 30. The opposing surface 62fc is in contact with the surface 20fb. The surface 62fd faces radially outward and is in contact with the inner periphery of the front plate 11 of the drive plate 10. This allows the drive plate 10 to position the second friction element 62 in the radial direction. The surface 62fe faces radially outward and supports the inner periphery of the first intermediate plate 31 of the intermediate plate 30, thereby positioning the first intermediate plate 31 and ultimately the intermediate plate 30 in the radial direction.
[0055] Next, the inner circumferential surfaces 61ff, 62ff and the opposing surfaces 61fc, 62fc will be described in detail. As shown in Figures 5 and 6, the inner circumferential surfaces 61ff, 62ff include surfaces 61fg, 62g and inclined surfaces 61fh, 62fh.
[0056] The surfaces 61fg and 62fg are located radially inside the central wall portions 10a of the rear plate 12 and the front plate 11. The surfaces 61fg and 62fg are formed in an annular shape parallel to the axial direction.
[0057] The inclined surfaces 61fh, 62fh are inclined with respect to the axial direction so as to extend radially outward toward the flange 22. The inclined surfaces 61fh, 62fh are formed in an annular shape. Note that the inclined surfaces 61fh, 62fh may be provided partially on the inner circumferential surfaces 61ff, 62ff.
[0058] Furthermore, the inclined surfaces 61fh, 62fh are aligned radially with the axial ends 21b, 21c of the hub 21. The ends 61fi, 62fi of the inclined surfaces 61fh, 62fh opposite the flange 2 are located further in the axial direction (one direction D1 or the other direction D2) from the flange 22 toward the ends 61fi, 62fi of the inclined surfaces 61fh, 62fh than the ends 21b, 21c of the hub 21. In other words, the ends 21b, 21c of the hub 21 are aligned radially with intermediate portions of the inclined surfaces 61fh, 62fh between the ends 61fi, 62fi and the ends 61fj, 62fj, respectively.
[0059] Furthermore, the radially outer ends 61fk, 62fk of the opposing surfaces 61fc, 62fc are located radially outward of the friction surfaces 61fa, 62fa. In other words, the radially outer ends of the standing wall portions 61c, 62c are located radially outward of the friction surfaces 61fa, 62fa.
[0060] Furthermore, grooves 61fp, 62fp extending in the radial direction are provided in the opposing surfaces 61fc, 62fc. Grooves 61fp, 62fp are provided at positions that are offset in the circumferential direction from first coil springs 41 and second coil springs 42. In other words, grooves 61fp, 62fp are provided at positions that are not aligned radially with first coil springs 41 and second coil springs 42.
[0061] The disc spring 71 is interposed between the first friction element 61 and the flange 22. The disc spring 71 is annular about the rotation center Ax. The disc spring 71 has a conical shape whose diameter gradually increases in the other direction D2. The disc spring 71 has a first end 71a and a second end 71b. The first end 71a is an end (edge) on the inner circumferential side and is in contact with the surface 20fa of the flange 22 of the driven plate 20. The second end 71b is an end (edge) on the outer circumferential side and is inserted into the recess 61fm of the first friction element 61. That is, at least a portion of the disc spring 71 is accommodated in the recess 61fm. The recess 61fm is also referred to as an accommodation portion. The second end 71b is in contact with the surface 61fn that forms the recess 61fm of the first friction element 61. The second end 71b is aligned in the axial direction with the friction surface 10fa, the friction surface 10fb, the friction surface 61fa, and the friction surface 62fa. In other words, the second end 71b overlaps the friction surface 10fa in the axial direction via the first friction element 61, and overlaps the friction surface 10fb in the axial direction via the second friction element 62. The radial position of the second end 71b is within a range E1 of the radial position of the overlapping portion between the friction surface 10fa and the friction surface 61fa, and within a range E2 of the radial position of the overlapping portion between the friction surface 10fb and the friction surface 62fa. The disc spring 71 is an example of a third elastic element. The disc spring 71 may be made of an iron-based metallic material, such as spring steel.
[0062] The disc spring 71 presses the friction surface 10fa and the friction surface 61fa against each other and also presses the friction surface 10fb and the friction surface 62fa against each other by its elastic force. That is, the disc spring 71 generates an elastic force that presses the friction surface 10fa and the friction surface 61fa against each other and also presses the friction surface 10fb and the friction surface 62fa against each other. As a result, a frictional force is generated between the friction surface 10fa and the friction surface 61fa, and a frictional force is generated between the friction surface 10fb and the friction surface 62fa.
[0063] In the above configuration, the disc spring 71 presses the friction surface 10fa of the drive plate 10 and the friction surface 61fa of the first friction element 61 against each other, and presses the friction surface 10fb of the drive plate 10 and the friction surface 62fa of the second friction element 62 against each other, so that the friction surface 10fa comes into contact with the friction surface 61fa, and the friction surface 10fb comes into contact with the friction surface 62fa. This allows the drive plate 10 and the driven plate 20 to be positioned relative to each other in the axial direction. Furthermore, the opposing surface 30fa of the intermediate plate 30 comes into contact with the contact surface 61fb of the first friction element 61 in the axial direction, and the opposing surface 30fb of the intermediate plate 30 comes into contact with the contact surface 62fb of the second friction element 62 in the axial direction, so that the driven plate 20 and the intermediate plate 30 are positioned relative to each other in the axial direction.
[0064] At this time, as the first friction element 61 and the second friction element 62 slide against the drive plate 10 and wear, at least a portion of each of the first friction element 61 and the second friction element 62 becomes thinner in the axial direction. At this time, because the disc spring 71 is interposed between the first friction element 61 and the flange 22 of the intermediate plate 30, at least a portion of each of the first friction element 61 and the second friction element 62 becomes thinner in the axial direction so as to be spaced apart from each other in the axial direction. Specifically, in the first friction element 61, a portion between the friction surface 61fa and the opposing surface 61fc becomes thinner in the axial direction, and in the second friction element 62, a portion between the friction surface 62fa and the opposing surface 62fc becomes thinner in the axial direction. This prevents the gap between the contact surface 61fb of the first friction element 61 and the contact surface 62fb of the second friction element 62 from becoming narrower. In other words, the first friction element 61 and the second friction element 62 wear so that the rattle between the second intermediate plate 32 of the intermediate plate 30 and the first friction element 61 and the rattle between the first intermediate plate 31 of the intermediate plate 30 and the second friction element 62 are reduced.
[0065] Furthermore, in the above configuration, grease applied to the hub 21 may be scattered radially outward due to centrifugal force. When this happens, the grease hits the inclined surfaces 61fh, 62fh. The grease that hits the inclined surfaces 61fh, 62fh moves along the inclined surfaces 61fh, 62fh toward the opposing surfaces 61fc, 62fc, and moves radially outward through gaps between the opposing surfaces 61fc, 62fc and the flange 22. The grease that passes between the opposing surfaces 61fc, 62fc and the flange 22 flows out radially outward through openings between the front plate 11 and the rear plate 12.
[0066] As described above, in this embodiment, the damper 1 includes the drive plate 10 (first rotating element), the driven plate 20 (second rotating element), the first coil spring 41 and the second coil spring 42 (elastic elements), the first friction element 61 and the second friction element 62 (two friction elements), and the disc spring 71 (pressing element). The drive plate 10 is provided to be rotatable about the rotation center Ax. The drive plate 10 has two central wall portions 10a (friction wall portions) formed in an annular shape around the rotation center Ax and aligned in the axial direction of the rotation center Ax. The driven plate 20 is provided to be rotatable about the rotation center Ax. The driven plate 20 has a hub 21 (connecting portion) and a flange 22 (support wall portion). The hub 21 is located radially inward of the two central wall portions 10a from the rotation center Ax and is formed in a cylindrical shape around the rotation center Ax. The flange 22 extends from the hub 21 between the two central wall portions 10a and is formed in an annular shape around the rotation center Ax. The first coil spring 41 and the second coil spring 42 are interposed between the drive plate 10 and the driven plate 20 and elastically expand and contract in the circumferential direction of the rotation center Ax. The first friction element 61 and the second friction element 62 are provided on both axial sides of the flange 22 and are supported by the flange 22 so as to be rotatable integrally with the driven plate 20 around the rotation center Ax. The first friction element 61 and the second friction element 62 each have inner circumferential surfaces 61ff, 62ff, friction surfaces 61fa, 62fa, and opposing surfaces 61fc, 62fc. The inner circumferential surfaces 61ff, 62ff extend from radially inner positions of the central wall portion 10a toward the flange 22. The friction surfaces 61fa, 62fa are located radially outward from the inner circumferential surfaces 61ff, 62ff, and are located between the central wall portion 10a and the flange 22, so as to be able to slide on the central wall portion 10a. The opposing surfaces 61fc, 62fc are located on the flange 22 side from the friction surfaces 61fa, 62fa, extend radially outward from the inner circumferential surfaces 61ff, 62ff, and face the flange 22. The disc springs 71 (pressing elements) are interposed between the first friction element 61 and the second friction element 62 and the flange 22, and generate elastic force that presses the central wall portion 10a and the friction surfaces 61fa, 62fa against each other.At least one (for example, both) of the first friction element 61 and the second friction element 62 has an inner circumferential surface 61ff, 62ff provided with inclined surfaces 61fh, 62fh that extend radially outward toward the flange 22.
[0067] With this configuration, for example, the inclined surfaces 61fh, 62fh are provided on at least one (for example, both) of the first friction element 61 and the second friction element 62. Therefore, even if grease is applied to the hub 21 and the grease scatters radially outward due to centrifugal force, the grease is likely to strike the inclined surfaces 61fh, 62fh. The grease that strikes the inclined surfaces 61fh, 62fh moves along the inclined surfaces 61fh, 62fh toward the opposing surfaces 61fc, 62fc, passing between the opposing surfaces 61fc, 62fc and the flange 22 and then moving radially outward. This tends to prevent grease from adhering to the friction surfaces 61fa, 62fa of the first friction element 61 and the second friction element 62 and the friction surfaces fa, 10fb of the drive plate 10. This prevents a decrease in the friction force between the drive plate 10 and the first friction element 61 and the second friction element 62. That is, the friction force between the drive plate 10 and the first friction element 61 and the second friction element 62 is stabilized. This suppresses the occurrence of resonance in the damper 1, making it easier to ensure the performance of the damper 1. Furthermore, with the above configuration, it is not necessary to provide grooves or the like in the hub 21 to prevent grease from adhering to the friction surfaces 61fa, 62fa of the first friction element 61 and the second friction element 62 and the friction surfaces fa, 10fb of the drive plate 10. This prevents the shape of the hub 21 from becoming too complicated, and also prevents an increase in the manufacturing cost of the hub 21.
[0068] Furthermore, the radially outer ends 61fk, 62fk of the opposing surfaces 61fc, 62fc of the first friction element 61 and the second friction element 62, on which the inclined surfaces 61fh, 62fh are provided, are positioned radially outward of the friction surfaces 61fa, 62fa.
[0069] According to this configuration, grease that moves radially outward from the radially outer ends 61fk, 62fk of the opposing surfaces 61fc, 62fc is likely to be prevented from adhering to the friction surfaces 61fa, 62fa.
[0070] Furthermore, grooves 61fp and 62fp extending in the radial direction are provided on the opposing surfaces 61fc and 62fc of the first friction element 61 and the second friction element 62 on which the inclined surfaces 61fh and 62fh are provided.
[0071] According to this configuration, the grease that has flowed from the inclined surfaces 61fh, 62fh to the opposing surfaces 61fc, 62fc can be guided (discharged) radially outward by the grooves 61fp, 62fp.
[0072] Moreover, the grooves 61fp and 62fp are provided at positions offset from each other in the circumferential direction relative to the first coil spring 41 and the second coil spring .
[0073] With this configuration, grease flowing radially outward from grooves 61fp, 62fp adheres to first coil spring 41 and second coil spring 42, and is likely to be prevented from adhering to friction surfaces 61fa, 62fa.
[0074] In addition, the inclined surfaces 61fh, 62fh are radially aligned with the axial ends 21b, 21c of the hub 21, and the ends 61fi, 62fi of the inclined surfaces 61fh, 62fh opposite the flange 2 are located further in the axial direction (one direction D1 or the other direction D2) from the flange 22 toward the ends 61fi, 62fi of the inclined surfaces 61fh, 62fh than the ends 21b, 21c of the hub 21.
[0075] With this configuration, when grease applied to the hub 21 is scattered radially outward due to centrifugal force, the grease is more likely to come into contact with the inclined surfaces 61fh, 62fh. This further reduces the likelihood of grease adhering to the friction surfaces 61fa, 62fa of the first friction element 61 and the second friction element 62.
[0076] In the above embodiment, the disc spring 71 is interposed between the first friction element 61 and the second friction element 62 and the flange 22, but the present invention is not limited to this. For example, the disc spring 71 may be interposed between the first friction element 61 and the second friction element 62 and the flange 22.
[0077] In addition, in the above embodiment, an example in which the recessed portion 61fm is provided is shown, but this is not limiting. For example, the recessed portion 61fm does not have to be provided.
[0078] In the above embodiment, an example in which the intermediate plate 30 is provided is shown, but the present invention is not limited to this. For example, the intermediate plate 30 does not have to be provided.
[0079] In the above embodiment, the inclined surfaces 61fh, 62fh are provided on both the first friction element 61 and the second friction element 62, but this is not limiting. For example, the inclined surfaces 61fh, 62fh may be provided on only one of the first friction element 61 and the second friction element 62.
[0080] Although the embodiments of the present invention have been described above, they are merely examples and are not intended to limit the scope of the invention. The embodiments can be implemented in various other forms, and various omissions, substitutions, combinations, and modifications can be made without departing from the spirit of the invention. Furthermore, the configurations and shapes of each example can be partially interchanged. Furthermore, the specifications of each configuration and shape (structure, type, direction, shape, size, length, width, height, number, arrangement, position, etc.) can be appropriately changed and implemented. [Explanation of symbols]
[0081] 1...Damper 10...Drive plate (first rotating element) 10a...Central wall part (friction wall part) 20...Driven plate (second rotating element) 21...Hub (connection part) 21b, 21c...edge 22...Flange (support wall portion) 41...First coil spring (elastic element) 42...Second coil spring (pressing element) 61...First friction element (friction element) 61fa…Friction surface 61fc...Opposite surface 61ff…Inner peripheral surface 61fh…Slope surface 61fk...end 61fp…Groove 62...Second friction element (friction element) 62fa…Friction surface 62fc...opposing surface 62ff…Inner peripheral surface 62fh…Slope surface 62fk...edge 62fp…groove 71...Disc spring (pressing element) Ax...center of rotation
Claims
1. a first rotating element that is rotatable around a rotation center and has two friction wall portions that are annularly formed around the rotation center and aligned in an axial direction of the rotation center; a second rotating element provided rotatably around the rotation center, the second rotating element including: a connecting portion located radially inside the rotation center relative to the two friction wall portions and formed in a cylindrical shape around the rotation center; and a support wall portion extending from the connecting portion between the two friction wall portions and formed in an annular shape around the rotation center; an elastic element interposed between the first rotating element and the second rotating element and elastically expanding and contracting in a circumferential direction of the rotation center; two friction elements provided on both sides of the support wall portion in the axial direction, supported by the support wall portion so as to be rotatable around the rotation center integrally with the second rotating element, each having an inner circumferential surface extending from a radially inner position of the friction wall portion toward the support wall portion, a friction surface located radially outward from the inner circumferential surface and between the friction wall portion and the support wall portion, and capable of sliding against the friction wall portion, and an opposing surface located on the support wall portion side with respect to the friction surface, extending radially outward from the inner circumferential surface and opposing the support wall portion; a pressing element that is interposed between the friction element and the support wall portion and generates an elastic force that presses the friction wall portion and the friction surface against each other; Equipped with The inner circumferential surface of at least one of the two friction elements is provided with an inclined surface that extends radially outward toward the support wall portion. Damper.
2. The radially outer end of the opposing surface of the friction element on which the inclined surface is provided is located radially outer than the friction surface. The damper according to claim 1 .
3. The opposing surface of the friction element on which the inclined surface is provided is provided with a groove extending in the radial direction. The damper according to claim 1 or 2.
4. The groove is provided at a position offset in the circumferential direction relative to the elastic element. The damper according to claim 3 .
5. the inclined surface is aligned in the radial direction with the axial end of the coupling portion; an end of the inclined surface opposite to the support wall portion is located further in the axial direction from the support wall portion toward the end of the inclined surface than the end of the connecting portion; A damper according to any one of claims 1 to 4.
Citation Information
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